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10.1109/ICPR.2014.61guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
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Face Recognition in Videos by Label Propagation

Published: 24 August 2014 Publication History
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  • Abstract

    We consider the problem of automatic identification of faces in videos such as movies, given a dictionary of known faces from a public or an alternate database. This has applications in video indexing, content based search, surveillance, and real time recognition on wearable computers. We propose a two stage approach for this problem. First, we recognize the faces in a video using a sparse representation framework using h-minimization and select a few key-frames based on a robust confidence measure. We then use transductive learning to propagate the labels from the key-frames to the remaining frames by incorporating constraints simultaneously in temporal and feature spaces. This is in contrast to some of the previous approaches where every test frame/track is identified independently, ignoring the correlation between the faces in video tracks. Having a few key frames belonging to few subjects for label propagation rather than a large dictionary of actors reduces the amount of confusion. We evaluate the performance of our algorithm on Movie Trailer face dataset and five movie clips, and achieve a significant improvement in labeling accuracy compared to previous approaches.

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    • (2017)Deep learning for content-based video retrieval in film and television productionMultimedia Tools and Applications10.1007/s11042-017-4962-976:21(22169-22194)Online publication date: 1-Nov-2017

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      cover image Guide Proceedings
      ICPR '14: Proceedings of the 2014 22nd International Conference on Pattern Recognition
      August 2014
      4742 pages
      ISBN:9781479952090

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      IEEE Computer Society

      United States

      Publication History

      Published: 24 August 2014

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      • (2017)Deep learning for content-based video retrieval in film and television productionMultimedia Tools and Applications10.1007/s11042-017-4962-976:21(22169-22194)Online publication date: 1-Nov-2017

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